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An Evolutionary Firefly Algorithm for the Estimation of Nonlinear Biological Model Parameters

机译:进化萤火虫求解非线性生物模型参数估计

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摘要

The development of accurate computational models of biological processes is fundamental to computational systems biology. These models are usually represented by mathematical expressions that rely heavily on the system parameters. The measurement of these parameters is often difficult. Therefore, they are commonly estimated by fitting the predicted model to the experimental data using optimization methods. The complexity and nonlinearity of the biological processes pose a significant challenge, however, to the development of accurate and fast optimization methods. We introduce a new hybrid optimization method incorporating the Firefly Algorithm and the evolutionary operation of the Differential Evolution method. The proposed method improves solutions by neighbourhood search using evolutionary procedures. Testing our method on models for the arginine catabolism and the negative feedback loop of the p53 signalling pathway, we found that it estimated the parameters with high accuracy and within a reasonable computation time compared to well-known approaches, including Particle Swarm Optimization, Nelder-Mead, and Firefly Algorithm. We have also verified the reliability of the parameters estimated by the method using an a posteriori practical identifiability test.
机译:精确的生物过程计算模型的开发是计算系统生物学的基础。这些模型通常由严重依赖系统参数的数学表达式表示。这些参数的测量通常很困难。因此,通常通过使用优化方法将预测模型拟合到实验数据来估计它们。然而,生物过程的复杂性和非线性对精确,快速的优化方法的发展提出了重大挑战。我们介绍了一种新的混合优化方法,该方法融合了萤火虫算法和差分进化方法的进化运算。所提出的方法通过使用进化过程的邻域搜索来改进解决方案。在精氨酸分解代谢和p53信号通路负反馈回路的模型上测试我们的方法,我们发现与已知方法(包括粒子群优化,Nelder-米德和萤火虫算法。我们还使用后验实用可识别性测试验证了通过该方法估算的参数的可靠性。

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